Active Cells, Biochemistry & Physiology Digestion, Kidneys & Other Organs

Visualising the early secretory pathway in situ

In plain English

AI plain-English summary

Cells rely on a network of membrane-bound compartments to shuttle proteins to their correct destinations, but how the cell handles oversized cargoes like collagen—the most abundant protein in the animal body—remains poorly understood. This project will use advanced imaging techniques to watch, in real time and within living cells, how large extracellular matrix (ECM) components such as collagen are transported from one membrane compartment to another and finally secreted outside the cell. The fundamental gap is that current knowledge of membrane transport comes mostly from studies of small proteins; the machinery that moves giant collagen molecules may work differently, and that machinery is what the researchers aim to map. Collagen secretion goes wrong in two major ways: genetic mutations that disrupt transport cause cartilage defects, while excessive collagen deposition drives organ fibrosis—a scarring process that can follow injuries from diabetes, hypertension, hepatitis, and lung disease. Severe fibrosis is estimated to account for up to 45% of all deaths in the developed world. Understanding the basic transport route could eventually point to new targets for drugs that prevent or reverse fibrosis, though the work is fundamentally curiosity-driven. Past discoveries in membrane trafficking have already yielded therapies for rare genetic disorders, and a clearer picture of how cells handle large secreted proteins may open similar unexpected avenues.

View original technical description
All eukaryotic cells are organised in membrane-bound compartments which perform essential and distinct functions dependent on their protein, lipid and small molecule composition. Several highly regulated transport pathways ensure that the right components are transported to the right organelle at the right time. Complex multicellular organisms use membrane transport to secrete proteins to the extracellular environment, including hormones, immunoglobulins, and components of the extra-cellular matrix (ECM). Many ECM components, including collagen (the most abundant secreted protein in animals) are very large proteins, which pose a challenge for intracellular membrane transport systems. Dysregulation of collagen secretion is linked to a number of diseases, including genetic defects in cartilage formation that arise from mutations in membrane-transport components, as well as organ fibrosis that happens upon excessive collagen deposition during wound healing. Fibrosis can develop upon injuries caused by a number of common conditions such as diabetes, hypertension, cardiomyopathies, hepatitis, idiopathic pulmonary disease, cancer, and more. This can in turn lead to failure of vital organs as parenchymal tissue is disrupted by excessive ECM. Consequently, severe fibrosis is estimated to account for up to 45% of all deaths in the developed world. Despite its fundamental importance in health and disease, we still do not fully understand how large ECM components are transported between membrane compartments and secreted to the extracellular environment. In this grant, we aim to illuminate the membrane transport pathway that mediate collegen secretion using advanced imaging methodologies.

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Researchers

Giulia Zanetti (Principal Investigator)

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Original classification

Research and Innovation

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